Non-gaussian States

Non-Gaussian states are quantum states whose statistical structure cannot be fully described by Gaussian distributions, making them important resources for processing information beyond the limits of Gaussian quantum systems. They arise when nonlinear interactions, photon addition or subtraction, or measurement-based conditioning alters a Gaussian state, often producing complex phase-space features such as Wigner-function distortions or negativity. In engineering, researchers design and characterize these states in optical, microwave, and other quantum platforms to improve quantum computation, precision sensing, communication, and error correction. Controlling their preparation, stability, and measurement is therefore central to building scalable quantum technologies.

Non-gaussian States - Related Videos

Education

JoVE Core - Math Fundamentals

Gaussian Elimination: Problem Solving

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2025

Systems of linear equations in several variables are pivotal in modeling complex scenarios involving multiple unknowns and constraints. Such systems are widely used in various fields to represent relationships where several conditions must be simultaneously satisfied. Each variable in the system corresponds to an unknown quantity, while each equation imposes a linear constraint, leading to a structured approach for analyzing and solving real-world problems.A system of three equations with three...

Research

JoVE Journal - Engineering

Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators

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Cited by 13 •

2014

We describe the reliable generation of non-Gaussian states of traveling optical fields, including single-photon states and coherent state superpositions, using a conditional preparation method operated on the non-classical light emitted by optical parametric oscillators. Type-I and type-II phase-matched oscillators are considered and common procedures, such as the required frequency filtering or the high-efficiency quantum state characterization by homodyning, are detailed.

Dissecting Mechanoenzymatic Properties of Processive Myosins with Ultrafast Force-Clamp Spectroscopy

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Cited by 1 •

2021

Presented here is a comprehensive protocol to perform ultrafast force-clamp experiments on processive myosin-5 motors, which could be easily extended to the study of other classes of processive motors. The protocol details all the necessary steps, from the setup of the experimental apparatus to sample preparation, data acquisition and analysis.

Subsurface Defect Localization by Structured Heating Using Laser Projected Photothermal Thermography

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Cited by 7 •

2017

This method aims at locating vertical subsurface defects. Here, we couple a laser with a spatial light modulator and trigger its video input to heat a sample surface deterministically with two anti-phased modulated lines while acquiring highly resolved thermal images. The defect position is retrieved from evaluating thermal wave interference minima.

Quantification of Dendritic Spines Using Confocal Microscopy Imaging

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2025

Source: Gouder, et. al. Three-dimensional Quantification of Dendritic Spines from Pyramidal Neurons Derived from Human Induced Pluripotent Stem Cells. J. Vis. Exp. (2015).This video demonstrates the imaging and analysis of dendritic spines in transduced, immunolabeled pyramidal neurons using confocal microscopy. Background noise is reduced, and dendrites are traced by estimating their diameter and length. Automated spine segmentation involves setting parameters for dendrite and spine dimensions...

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